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A Novel Method for Automatic Identification of Respiratory Disease from Acoustic Recordings

机译:一种自动鉴定声学记录呼吸系统疾病的新方法

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This paper evaluates the use of breath sound recordings to automatically determine the respiratory health status of a subject. A number of features were investigated and Wilcoxon Rank Sum statistical test was used to determine the significance of the extracted features. The significant features were then passed to a feature selection algorithm based on mutual information, to determine the combination of features that provided minimal redundancy and maximum relevance. The algorithm was tested on a publicly accessible respiratory sounds database. With the testing dataset, the trained classifier achieved accuracy of 87.1%, sensitivity of 86.8% and specificity of 93.6%. These are promising results showing the possibility of determining the presence or absence of respiratory disease using breath sounds recordings.
机译:本文评估了呼吸录音的使用,以自动确定受试者的呼吸系统状态。研究了许多特征,并使用Wilcoxon等级统计测试来确定提取特征的重要性。然后基于相互信息传递到特征选择算法的显着特征,以确定提供最小冗余和最大相关性的功能的组合。该算法在公开可访问的呼吸声数据库上进行了测试。通过测试数据集,培训的分类器可实现87.1%,灵敏度为86.8%,特异性为93.6%。这些是有前途的结果,显示使用呼吸声记录来确定呼吸系统疾病的存在或不存在的可能性。

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